Ultrafast supercontinuum sculpting for two-photon spectroscopy and microscopy of ratiometric fluorescent indicators

Author:

Chebotarev Artem S.1ORCID,Raevsky Roman I.23ORCID,Linovsky Georgy N.1ORCID,Kostyuk Alexander I.23ORCID,Belousov Vsevolod V.234ORCID,Fedotov Andrei B.1,Bilan Dmitry S.23ORCID,Lanin Aleksandr A.1ORCID

Affiliation:

1. Physics Department, M.V. Lomonosov Moscow State University 1 , 111992 Moscow, Russia

2. M.M. Shemyakin and Yu.A. Ovchinnikov Institute of Bioorganic Chemistry, Russian Academy of Science 2 , 117997 Moscow, Russia

3. Pirogov Russian National Research Medical University 3 , 117997 Moscow, Russia

4. Federal Center of Brain Research and Neurotechnologies, Federal Medical-Biological Agency 4 , 119330 Moscow, Russia

Abstract

We present a compact laser system for quantitative two-photon excitation spectra measurements and ratiometric two-photon imaging of fluorescent protein indicators. The fundamental of the system is a short segment of photonic crystal fiber (PCF), which supports a nonlinear transformation of low-power ultrashort pulses by preserving temporal coherence, and this generates an ultrafast almost octave-spanning supercontinuum (SC). Accurate sculpting of the SC by its amplitude and phase modulation provides implementation of the spectroscopic and microscopic modalities. The spectroscopic one was exhibited by two-photon action cross section spectra measuring for the genetically encoded fluorescent sensing proteins of the vital biochemical parameters: acidity (SypHer3s), concentration of hydrogen peroxide (HyPer3 and HyPer7), redox status of NADH and glutathione (RexYFP and Grx1-roGFP2), hypohalous acids and their derivatives (Hypocrates). For the microscopy, we investigated and optimized the intensity pump pulse profiles under the high numerical objective by dispersion scan technique. We conducted real-time monitoring of the dynamics of hydrogen peroxide in HeLa cells with subcellular spatial resolution by means of ratiometric two-photon imaging of Hyper7 sensors. The presented hybrid laser system provides an ideal optical toolbox in order to develop ratiometric fluorescent sensors, which can be visualized in vivo using two-photon microscopy.

Funder

Russian Science Foundation

Publisher

AIP Publishing

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